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Discovering likely invariants of distributed transaction systems for autonomic system management

机译:发现分布式交易系统的可能不变性,以实现自主系统管理

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Large amount of monitoring data can be collected from distributed systems as the observables to analyze system behaviors. However, without reasonable models to characterize systems, we can hardly interpret such monitoring data effectively for system management. In this paper, a new concept named flow intensity is introduced to measure the intensity with which internal monitoring data reacts to the volume of user requests in distributed transaction systems. We propose a novel approach to automatically model and search relationships between the flow intensities measured at various points across the system. If the modeled relationships hold all the time, they are regarded as invariants of the underlying system. Experimental results from a real system demonstrate that such invariants widely exist in distributed transaction systems. Further we discuss how such invariants can be used to characterize complex systems and support autonomic system management.
机译:可以从分布式系统中收集大量监视数据,以观察系统行为。但是,如果没有合理的模型来表征系统,我们将很难有效地解释此类监视数据以进行系统管理。在本文中,引入了一种新的概念,即流量强度,以测量内部监视数据对分布式事务处理系统中的用户请求量做出反应的强度。我们提出了一种新颖的方法来自动建模和搜索在系统中各个点处测量的流量强度之间的关系。如果建模的关系一直存在,则将它们视为基础系统的不变性。实际系统的实验结果表明,这种不变性广泛存在于分布式交易系统中。我们进一步讨论了如何将这些不变量用于表征复杂系统并支持自主系统管理。

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